首页> 外文会议>Image Processing, 1995. Proceedings., International Conference on >Adaptive 3-D segmentation algorithms for microscope images using local in-focus, and contrast features: application to Pap smears
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Adaptive 3-D segmentation algorithms for microscope images using local in-focus, and contrast features: application to Pap smears

机译:使用局部对焦和对比度功能的显微镜图像自适应3-D分割算法:应用于子宫颈抹片检查

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Presents algorithms for segmenting three-dimensional (3-D) brightfield microscope images of thick and overlapped regions of Pap smears, acquired using a specially-developed high-speed 3-D microscope system. Algorithms for segmenting these images require a careful tradeoff between sophistication and processing speed, due to extreme image variability and the large volume of data involved. These challenges are overcome by applying a sequence of algorithms including an adaptive clustering algorithm that exploits local contrast and focus features, a boundary extraction and refinement algorithm based on gray-level thinning, a 3-D extension of the watershed algorithm to separate overlapping objects, and a boundary selection algorithm that takes into account a priori known characteristics of nuclei. It has been successfully applied on a variety of images.
机译:提出了使用专用的高速3-D显微镜系统对巴氏涂片厚和重叠区域的三维(3-D)明场显微镜图像进行分割的算法。由于极端的图像可变性和涉及的大量数据,用于分割这些图像的算法需要在复杂性和处理速度之间进行谨慎的权衡。通过应用一系列算法来克服这些挑战,这些算法包括利用局部对比度和焦点特征的自适应聚类算法,基于灰度级细化的边界提取和细化算法,分水岭算法的3-D扩展以分离重叠的对象,以及考虑了原子核先验特征的边界选择算法。它已成功应用于各种图像。

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